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Transmission through thin layers. In Fig. 35-43, light is incident perpendicularly on a thin layer of material 2 that lies between (thicker) materials 1 and 3. (The rays are tilted only for clarity.) Part of the light ends up in material 3 as ray r3(the light does not reflect inside material 2) and r4(the light reflects twice inside material 2). The waves of and interfere, r3and r4here we consider the type of interference to be either maximum (max) or minimum (min). For this situation, each problem in Table 35-3 refers to the indexes of refraction n1,n2and n3, the type of interference, the thin-layer thickness Lin nanometers, and the wavelength in nanometers of the light as measured in air. Where λis missing, give the wavelength that is in the visible range. Where Lis missing, give the second least thickness or the third least thickness as indicated.

Short Answer

Expert verified

The wavelength with maximum intensity of transmitted light is509nm

Step by step solution

01

Given Data.

  • The refractive index of first medium is1.50.
  • The refractive index of the thin film is1.34
  • The refractive index of the third medium1.42
  • The thickness of the layer is 380nm.
02

Interference of light through thin films.

Light that is incident normally on thin films is reflected from both the front and back surfaces, causing interference of the reflected light. When constructive interference happens, it produces bright reflected light, and when entirely destructive interference occurs, it produces a dark region.

The interference of the transmitted rays is similar to the interference of the reflection of light. Here in this case, as n1>n2and n2<n1the two transmitted rays have no phase difference. Therefore, the condition for constructive interference is

role="math" localid="1663088064803" 2L=mλmaxn2λmax=2Ln2m

Calculating the wavelength for first few orders number,

m=1;λ1=2380nm1.341=1018nmm=2;λ2=2380nm1.342=509nm

As 509nmlies in visible range, hence the wavelength with maximum intensity of transmitted light is 509nm.

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